The amino acid composition of the herb of some Astragalus L. species


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Abstract

Introduction. The genus Astragalus L. belonging to the legume (Fabaceae) family is represented by a wide variety of life forms and has about 3000 species. Saponins, flavonoids, and polysaccharides are the main biologically active substances (BASs) of plants of the genus Astragalus. Among the related compounds, amino acids (AAs) that are widely distributed in nature and participate in the regulation of different life processes in plants and animals are of interest. The search for new promising sources of AAs generates scientific interest and has practical significance in expanding the range of officinal medicinal plant raw materials. From this point of view, it is relevant to investigate the amino acid composition of Astragalus herb and to quantify this group of BASs in the examined samples. Objective: to comparatively study the amino acid composition of five Astragalus species growing in the Saratov Region Material and methods. The investigation objects were the herb samples of Astragalus henningii (Stev.) Klok., Astragalus varius S.G. Gmel., Astragalus testiculatus Pall., Astragalus dasyanthus Pall., and Astragalus zingeri Korsh., which had been collected in the Saratov Region in 2020-2021. Qualitative analysis was carried out using thin-layer chemical chromatography (TLC) in the n-butanol - glacial acetic acid - water (35:35:10:20) system. The reagent for detection was a 2% ninhydrin ethanol solution. The amount of free AAs was measured by a spectrophotometric method on a SHIMADZU UV-1800 spectrophotometer (Japan) at an analytical wavelength of 568 nm. Results. TLC was used to determine the amino acid composition of the aqueous extracts of the herb of the examined Astragalus species. Asparagine and proline were detected in all the samples analyzed. Nine amino acids, eight of which were significantly identified as arginine, asparagine, proline, glutamic acid, threonine, valine, methionine, and phenylalanine, were first found in the extracts from the herb of Astragalus henningii (Stev.) Klok., Astragalus varius S.G. Gmel., and Astragalus testiculatus Pall. The highest content of AAs was established to be in the aqueous extract from the herb of Astragalus henningii (Stev.) Klok. (5.50%) and Astragalus testiculatus Pall. (5.23%) and the lowest one was in Astragalus zingeri Korsh. (1.67%). Conclusion. The composition and quantification of the content of AAs in the examined samples show that the herb of these plants along with other BASs may be a promising source of AAs. The findings of this investigation can be used when assessing the identity and high quality of the herb of the Astragalus species analyzed.

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About the authors

Uliana Andreevna Matvienko

V.I. Razumovsky Saratov State Medical University

Email: matvienko.ulia2104@gmail.com
postgraduate student of the Department of General Biology, Pharmacognosy and Botany

Natalya Anatolyevna Durnova

V.I. Razumovsky Saratov State Medical University

Email: ndurnova@mail.ru
Head of the Department of General Biology, Pharmacognosy and Botany

Lyudmila Vitalievna Karavaeva

V.I. Razumovsky Saratov State Medical University

Email: anhelokar@gmail.com
postgraduate student of the Department of General, Bioorganic and Pharmaceutical Chemistry

Yuliya Viktorovna Romanteeva

V.I. Razumovsky Saratov State Medical University

Email: yuliyarom81@mail.ru
assistant professor of Department of General Biology, Pharmacognosy and Botany

References

  1. Li X., Qu L., Dong Y. et al. A review of recent research progress on the Astragalus genus. Molecules. 2014; 19 (11): 1885080. doi: 10.3390/molecules191118850.
  2. Rundel P.W., Huggins T.R., Prigge B.A., Sharifi M.R. Rarity in Astragalus: a California perspective. Aliso: A Journal of Systematic and Evolutionary Botany. 2015; 33 (2): 111-20. doi: 10.5642/aliso.20153302.04.
  3. Маевский П.Ф. Флора средней полосы Европейской части России. М.: Товарищество научных изданий КМК, 2014; 635.
  4. Березуцкий М.А., Якубова Л.Р., Дурнова Н.А. и др. Фармакологические свойства препаратов, созданных на основе экстракта астрагала. Химико-фармацевтический журнал. 2020; 54 (4): 20-5. doi: 10.30906/0023-1134-2020-54-4-20-25.
  5. Сергалиева М.У., Мажитова М.В., Самотруева М.А. Растения рода Астрагал: перспективы применения в фармации. Астраханский медицинский журнал. 2015; 10 (2): 17-31.
  6. Фармакопейная статья ФС 42-533-72 «Трава астрагала шерстистоцветкового».
  7. Bratkov V.M., Shkondrov A.M., Zdraveva P.K., Krasteva I.N. Flavonoids from the genus Astragalus: phytochemistry and biological activity. Pharmacognosy Reviews. 2016; 10 (19): 11-32. doi: 10.4103/0973-7847.176550: 10.4103/0973-7847.176550.
  8. Gorai D., Jash S.K., Roy R. Flavonoids from Astragalus genus. International J. of Pharmaceutical Sciences and Research. 2016; 7 (7): 2732-47. doi: 10.13040/IJPSR.0975-8232.7(7).2732-47.
  9. Тринеева, О.В., Рудая, М.А., Сливкин, А.И., Дубовицких, М.А. Исследование профиля свободных аминокислот плодов облепихи крушиновидной различных сортов методом тонкослойной хроматографии. Сорбционные и хроматографические процессы. 2020; 20 (2): 277-83. doi: 10.17308/sorpchrom.2020.20/2783.
  10. Туртуева Т.А., Николаева Г.Г., Гуляев С.М., Жалсанов Ю.В. Аминокислотный состав корней Astragalus membranaceus (Fish.) Bunge. Вестник БГУ. Медицина и фармация. 2013; 12: 75-7.
  11. Сергалиева М.У., Барскова Н.А. Астрагал лисий (Astragalus vulpinus Willd.) - источник биологически активных веществ. Астраханский медицинский журнал. 2017; 12 (1): 56-63.
  12. Сергалиева М.У., Самотруева М.А., Ахадова Д.А. Содержание аминокислот в траве Астрагала вздутого. Проблемы эффективного использования научного потенциала общества. 2018; 138-42.
  13. Гудкова А.А., Чистякова А.С., Сорокина А.А. и др. Изучение профиля аминокислот горца почечуйного травы (Polygonipersicariae herba). Вестник Воронежского государственного университета. Серия: Химия. Биология. Фармация. 2018; 4: 195-200.
  14. Qureshi M.N., Stecher G., Bonn G.K. Quality control of herbs: determination of amino acids in Althaea officinalis, Matricaria chamomilla and Taraxacum officinale. Pak. J. Pharm. Sci. 2014; 27 (3): 459-62.
  15. Олешко Г.И., Ярыгина Т.И., Зорина Е.В., Решетникова М.Д. Разработка унифицированной методики количественного определения суммы свободных аминокислот в лекарственном растительном сырье и экстракционных препаратах. Фармация. 2011; 3: 14-7.
  16. Лысиков Ю.А. Аминокислоты в питании человека. Экспериментальная и клиническая гастроэнтерология. 2012; 2: 88-105.
  17. Fares F. The role of O-linked and N-linked oligosaccharides on the structure-function of glycoprotein hormones: development of agonists and antagonists. Biochimica et Biophysica Acta (BBA)-General Subjects. 2006; 1760 (4): 560-7.
  18. Лямина М.В., Бойкова О.И. Содержание аминокислот в надземной части Astragаlus dаnicus, произрастающего в Тульской области. News of Science and Education. 2018; 4 (3): 18-20.

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